CA2295951A1 - Intracardiac blood pump - Google Patents
Intracardiac blood pump Download PDFInfo
- Publication number
- CA2295951A1 CA2295951A1 CA002295951A CA2295951A CA2295951A1 CA 2295951 A1 CA2295951 A1 CA 2295951A1 CA 002295951 A CA002295951 A CA 002295951A CA 2295951 A CA2295951 A CA 2295951A CA 2295951 A1 CA2295951 A1 CA 2295951A1
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- CA
- Canada
- Prior art keywords
- pump
- hose
- blood
- balloon
- catheter
- Prior art date
- Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
- Abandoned
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Classifications
-
- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61M—DEVICES FOR INTRODUCING MEDIA INTO, OR ONTO, THE BODY; DEVICES FOR TRANSDUCING BODY MEDIA OR FOR TAKING MEDIA FROM THE BODY; DEVICES FOR PRODUCING OR ENDING SLEEP OR STUPOR
- A61M25/00—Catheters; Hollow probes
- A61M25/01—Introducing, guiding, advancing, emplacing or holding catheters
- A61M25/0105—Steering means as part of the catheter or advancing means; Markers for positioning
- A61M25/0125—Catheters carried by the bloodstream, e.g. with parachutes; Balloon catheters specially designed for this purpose
-
- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61M—DEVICES FOR INTRODUCING MEDIA INTO, OR ONTO, THE BODY; DEVICES FOR TRANSDUCING BODY MEDIA OR FOR TAKING MEDIA FROM THE BODY; DEVICES FOR PRODUCING OR ENDING SLEEP OR STUPOR
- A61M60/00—Blood pumps; Devices for mechanical circulatory actuation; Balloon pumps for circulatory assistance
- A61M60/10—Location thereof with respect to the patient's body
- A61M60/122—Implantable pumps or pumping devices, i.e. the blood being pumped inside the patient's body
- A61M60/126—Implantable pumps or pumping devices, i.e. the blood being pumped inside the patient's body implantable via, into, inside, in line, branching on, or around a blood vessel
- A61M60/13—Implantable pumps or pumping devices, i.e. the blood being pumped inside the patient's body implantable via, into, inside, in line, branching on, or around a blood vessel by means of a catheter allowing explantation, e.g. catheter pumps temporarily introduced via the vascular system
-
- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61M—DEVICES FOR INTRODUCING MEDIA INTO, OR ONTO, THE BODY; DEVICES FOR TRANSDUCING BODY MEDIA OR FOR TAKING MEDIA FROM THE BODY; DEVICES FOR PRODUCING OR ENDING SLEEP OR STUPOR
- A61M60/00—Blood pumps; Devices for mechanical circulatory actuation; Balloon pumps for circulatory assistance
- A61M60/10—Location thereof with respect to the patient's body
- A61M60/122—Implantable pumps or pumping devices, i.e. the blood being pumped inside the patient's body
- A61M60/126—Implantable pumps or pumping devices, i.e. the blood being pumped inside the patient's body implantable via, into, inside, in line, branching on, or around a blood vessel
- A61M60/135—Implantable pumps or pumping devices, i.e. the blood being pumped inside the patient's body implantable via, into, inside, in line, branching on, or around a blood vessel inside a blood vessel, e.g. using grafting
-
- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61M—DEVICES FOR INTRODUCING MEDIA INTO, OR ONTO, THE BODY; DEVICES FOR TRANSDUCING BODY MEDIA OR FOR TAKING MEDIA FROM THE BODY; DEVICES FOR PRODUCING OR ENDING SLEEP OR STUPOR
- A61M60/00—Blood pumps; Devices for mechanical circulatory actuation; Balloon pumps for circulatory assistance
- A61M60/10—Location thereof with respect to the patient's body
- A61M60/122—Implantable pumps or pumping devices, i.e. the blood being pumped inside the patient's body
- A61M60/165—Implantable pumps or pumping devices, i.e. the blood being pumped inside the patient's body implantable in, on, or around the heart
-
- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61M—DEVICES FOR INTRODUCING MEDIA INTO, OR ONTO, THE BODY; DEVICES FOR TRANSDUCING BODY MEDIA OR FOR TAKING MEDIA FROM THE BODY; DEVICES FOR PRODUCING OR ENDING SLEEP OR STUPOR
- A61M60/00—Blood pumps; Devices for mechanical circulatory actuation; Balloon pumps for circulatory assistance
- A61M60/20—Type thereof
- A61M60/205—Non-positive displacement blood pumps
- A61M60/216—Non-positive displacement blood pumps including a rotating member acting on the blood, e.g. impeller
- A61M60/237—Non-positive displacement blood pumps including a rotating member acting on the blood, e.g. impeller the blood flow through the rotating member having mainly axial components, e.g. axial flow pumps
-
- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61M—DEVICES FOR INTRODUCING MEDIA INTO, OR ONTO, THE BODY; DEVICES FOR TRANSDUCING BODY MEDIA OR FOR TAKING MEDIA FROM THE BODY; DEVICES FOR PRODUCING OR ENDING SLEEP OR STUPOR
- A61M60/00—Blood pumps; Devices for mechanical circulatory actuation; Balloon pumps for circulatory assistance
- A61M60/80—Constructional details other than related to driving
- A61M60/855—Constructional details other than related to driving of implantable pumps or pumping devices
- A61M60/857—Implantable blood tubes
-
- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61M—DEVICES FOR INTRODUCING MEDIA INTO, OR ONTO, THE BODY; DEVICES FOR TRANSDUCING BODY MEDIA OR FOR TAKING MEDIA FROM THE BODY; DEVICES FOR PRODUCING OR ENDING SLEEP OR STUPOR
- A61M60/00—Blood pumps; Devices for mechanical circulatory actuation; Balloon pumps for circulatory assistance
- A61M60/80—Constructional details other than related to driving
- A61M60/855—Constructional details other than related to driving of implantable pumps or pumping devices
- A61M60/865—Devices for guiding or inserting pumps or pumping devices into the patient's body
-
- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61M—DEVICES FOR INTRODUCING MEDIA INTO, OR ONTO, THE BODY; DEVICES FOR TRANSDUCING BODY MEDIA OR FOR TAKING MEDIA FROM THE BODY; DEVICES FOR PRODUCING OR ENDING SLEEP OR STUPOR
- A61M60/00—Blood pumps; Devices for mechanical circulatory actuation; Balloon pumps for circulatory assistance
- A61M60/10—Location thereof with respect to the patient's body
- A61M60/122—Implantable pumps or pumping devices, i.e. the blood being pumped inside the patient's body
- A61M60/126—Implantable pumps or pumping devices, i.e. the blood being pumped inside the patient's body implantable via, into, inside, in line, branching on, or around a blood vessel
- A61M60/148—Implantable pumps or pumping devices, i.e. the blood being pumped inside the patient's body implantable via, into, inside, in line, branching on, or around a blood vessel in line with a blood vessel using resection or like techniques, e.g. permanent endovascular heart assist devices
Landscapes
- Health & Medical Sciences (AREA)
- Heart & Thoracic Surgery (AREA)
- Engineering & Computer Science (AREA)
- Life Sciences & Earth Sciences (AREA)
- Veterinary Medicine (AREA)
- Cardiology (AREA)
- Biomedical Technology (AREA)
- Hematology (AREA)
- Anesthesiology (AREA)
- Animal Behavior & Ethology (AREA)
- General Health & Medical Sciences (AREA)
- Public Health (AREA)
- Mechanical Engineering (AREA)
- Vascular Medicine (AREA)
- Biophysics (AREA)
- Pulmonology (AREA)
- Transplantation (AREA)
- External Artificial Organs (AREA)
- Media Introduction/Drainage Providing Device (AREA)
Abstract
The intracardiac pump (10) comprises a drive section (11) and a pump section (12). Flexible tubing (14) is connected to the pump section (12). A balloon (35) is provided on the distal end of the tubing (14) in order to displace said tubing (14) from the right atrium (21) to the pulmonary artery (26). The balloon acts as a guiding element in the bloodstream and is driven by natural blood flow, thus facilitating placement of the blood pump in the heart.
Description
Intracardiac Blood Puma The invention relates to an intracardiac blood pump and in particular to a blood pump which can be completely inserted through adjacent vessels into the heart to support the natural pumping function of the heart or replace it by continuous pumping operation.
A pump device for supporting the heart function' is described in W094/
09835 (Jarvik). Said pump device comprises pumps operating independ-ently of each other, each pump being provided with a pump section and a drive section rigidly connected with the pump device. The pump section of the one pump is inserted through an apecal operation opening into the left ventricle such that it delivers from the left ventrical into the aorta. The other pump section is inserted through another preferably apecal opera-tion opening into the right ~ ventricle so that it delivers from the right atrium into the pulmonary artery. Each of the pumps is extended at its pump outlet by a hose-type outlet canula which may be guided through the respective heart valve.
An intracardiac blood pump which is inserted from the aorta through the aortic valve into the left ventricle is known from W097/37696 (Rau et al).
Here the pump inlet is extended by a hose passing through the aortic va Ive.
From WO97/37697 (Rau et al.) an intravascular blood pump is known which can moved through a blood vessel. This blood pump, too, is extended at its outlet end by an intake hose. Said intake hose comprises an inflatable balloon serving as isolating device and preventing blood from flowing laterally along the outside of the intake hose.
Finally, US patent 4 753 221 (Kensey et al.) describes a pump catheter having a pump to be placed in the heart. Said pump comprises an impeller and a pump casing surrounding said impeller. The pump casing can be placed in the heart when the former is in the collapsed condition and subsequently unfolded by inflating a balloon connected with the pump casing.
Further, small-lumen catheters for pressure and volumetric flow measure-ment are known which serve for diagnostic purposes and comprise an inflatable balloon at the distal catheter end. Said ballopn is used for posi-tioning the catheter tip in the pulmonary artery. , Intracardiac blood pumps which are inserted through a blood vessel into the heart are difficult to correctly place in the heart. In particular when the blood pump is inserted through the upper vena cava to pump blood from the right atrium into the pulmonary artery, correct placing of the blood pump is difficult since the pump must perform a bend of approxi-mately 180° to ensure that the intake opening is located in the right atrium and the outlet opening in the pulmonary artery. Further, numerous fibres and tendines exist in the right ventricle, which retain the tricuspid valve, protect the leaflet of the valve against bulging inside out and en-sure inherent stability of the heart. A blood pump inserted through a vena cava must be guided between such fibres and tendines.
It is the object of the invention to provide an intracardiac blood pump which can be relatively easily placed in the heart.
According to the invention this object is solved by means of the features stated in claim 1.
A flexible hose is attached to the pump outlet of the blood pump according to the invention with the distal end of the hose comprising a balloon acting as guide element in the blood flow. The invention utilizes the fact that the blood naturally flows in the heart from the vena cava into the right atrium and through the right ventricle into the pulmonary artery. The blood pump which comprises a balloon at the distal end of the hose is inserted along this path with the balloon floating in the blood flow automatically finds its way from the right atrium into the pulmonary artery. The hose outlet is subsequently stabilized in the pulmonary artery.wheras the pump section is positioned in the right atrium. The pump hose performs a bend of ap-proximately 180°. In this way it is possible to correctly place the blood pump including the pump hose in the heart without the hose outlet push-ing against the ventricular septa or diagnostic aids (X-rays or ultrasound) being required.
The term intracardiac within the meaning of the present invention includes the heart chambers (ventricles), the atria and the adjacent vascular stumps.
The pump hose should prefably be prebent according to its final position which it will assume in the heart. This requires bending by at least ap-proximately 150°. Although the pump hose must be capable of being elongated for insertion through the vena cava it should assume a U-form or a V-form in the slackened condition. It would be particularly preferred that the pump hose displays a flexural rigidity which decreases from the proximal end to the distal end. In this way the distal end as path finder can be easily moved so that the balloon can better follow the natural blood flow.
The balloon must not necessarily be directly attached to the pump hose. It may also be fixed to a catheter which forms part of the pump hose and extends on the inside or the outside of the latter. In any case a lumen must extend towards the balloon via which the balloon can be inflated. A
second lumen may additionally be provided into which a guide wire is in-serted which facilitates advancing of the pump hose through the vascular system. After removal of the guide wire said second lumen may be used as pressure measuring lumen.
According to a preferred embodiment the balloon is configured as annular balloon and surrounds the pump hose. The advantage of such a configura-tion is that owing to the presence of the balloon the distal hose end has an increased outside diameter and is thus retained by the pulmonary valve. In this way the balloon helps to anchor the hose end to the pul-monary valve while the hose outlet is located in the pulmonary artery.
This prevents the hose outlet from slipping out the pulmonary artery. An-other advantage is that the annular balloon forms a rounded blunt end of the pump hose so that the pump hose cannot damage the vascular or heart walls or other parts of the heart. Finally, the hose end is prevented from hooking at the valve margin or tendines in the heart.
Since the pump section pumps into the pump hose, the pump hose is automatically kept open. Thus a collapsible hose can be used as pump hose, e. g. a hose made of sheet material, whose wall is not inherently stable. Through this hose a catheter may extend to the balloon arranged at the distal end.
When an intracardiac blood pump with a flexible pump hose is used there is the danger that the blood leaving the hose outlet causes a recoil at the hose, which may result in a retrograde displacement of the hose. Thus the hose may slip out of the pulmonary valve. It is thus a further object of the invention to provide an intracardiac blood pump in which displacements of the hose due to hydraulic reaction forces are prevented.
According to the invention this object is solved by means of the features stated in claim 13. To the distal end of the hose a traction element is fixed to which the pumped flow is directed. Said traction element may be a leaf-let or a balloon. The blood flow leaving the hose end pushes against the traction element, which produces a forward directed force acting against the retraction force of the hose. In this way the traction element serves for a stabilized positioning of the pump hose.
Hereinafter embodiments of the invention are explained in detail with reference to the drawings in which:
Fig. 1 shows a cross-section of the heart with a blood pump arranged therein, Fig. 2 shows a representation of the blood pump of Fig. 1, Fig. 3 shows a section of detail III of Fig. 2, Fig. 4 shows a second embodiment of the blood pump, Fig. 5 shows a third embodiment and Fig. 6 shows on an enlarged scale a representation of the catheter of the embodiment shown in Fig. 5.
According to Fig. 1 the blood pump 10 is an intravascular blood pump, i. e. a blood pump which can be inserted through the blood vessel system of a patient into the heart. The outside diameter of such a blood pump is at no place larger than 8 mm. The pump 10 comprises a drive section 11 and a pump section 12 rigidly connected with the drive section. The pump corresponds e. g. to that described in W097/37696 so its internal struc-ture needs not be explained herein detail. In the transition area between drive section 11 and pump section 12 intake openings 13 are arranged through which blood is radially taken in from. outside. The pump section 12 comprises an impeller (not shown) which moves the blood in .axial di-rection. To the outlet of the pump section 12 a pump hose 14 is connect-ed. Said pump hose comprises a proximal end 15 connected with the pump outlet and a distal end 16 forming the hose outlet.
The proximal end of the pump 10 is connected with a catheter 17 which also contains the electrical supply lines for the drive section 11. Further, the catheter 17 comprises a lumen which can be connected to a compres-sed air source.
The pump hose 14 and the catheter 17 are of flexible design. The rigid length of the pump 10 does not exceed 35 mm to allow the pump to move through the bends of the blood vessel system. The length of the pump hose 14 is at least twice that of the rigid length of the pump. The pump hose is approximately 12 cm long and has an outside diameter of approxi-mately 8 mm. Its wall thickness is 0.05 mm to 0.2 mm. The bending radius of the hose bend is 40~ mm to 60 mm.
Fig. 1 shows a cross-section of the heart 20. The lower vena cava 22 and the upper vena cava 23 end in the right atrium 21. Between the right atrium 21 and the right ventricle 24 the tricuspid valve 25 is located.
Between the right ventricle 24 and the pulmonary artery 26 the pulmon-ary valve 27 is located. The blood flows from the pulmonary artery 26 to the lung and from there back to the left atrium 28 and the left ventricle 29. Between the left ventricle 29 and the aorta 30 the aortic valve 31 is located.
The pump 10 is positioned as right ventricular pump such that it delivers from the right atrium 21 into the pulmonary artery 26. For this purpose it is, in the embodiment sfiown, placed through the upper vena cava 23. It would also be possible to place it through the lower vena cava 22. During insertion of the pump 10 the pump hose 14 of the pump lies ahead, i. e. it is positioned downstream of the pump 10 as seen in the direction of flow of the blood surrounding the pump.
A pump device for supporting the heart function' is described in W094/
09835 (Jarvik). Said pump device comprises pumps operating independ-ently of each other, each pump being provided with a pump section and a drive section rigidly connected with the pump device. The pump section of the one pump is inserted through an apecal operation opening into the left ventricle such that it delivers from the left ventrical into the aorta. The other pump section is inserted through another preferably apecal opera-tion opening into the right ~ ventricle so that it delivers from the right atrium into the pulmonary artery. Each of the pumps is extended at its pump outlet by a hose-type outlet canula which may be guided through the respective heart valve.
An intracardiac blood pump which is inserted from the aorta through the aortic valve into the left ventricle is known from W097/37696 (Rau et al).
Here the pump inlet is extended by a hose passing through the aortic va Ive.
From WO97/37697 (Rau et al.) an intravascular blood pump is known which can moved through a blood vessel. This blood pump, too, is extended at its outlet end by an intake hose. Said intake hose comprises an inflatable balloon serving as isolating device and preventing blood from flowing laterally along the outside of the intake hose.
Finally, US patent 4 753 221 (Kensey et al.) describes a pump catheter having a pump to be placed in the heart. Said pump comprises an impeller and a pump casing surrounding said impeller. The pump casing can be placed in the heart when the former is in the collapsed condition and subsequently unfolded by inflating a balloon connected with the pump casing.
Further, small-lumen catheters for pressure and volumetric flow measure-ment are known which serve for diagnostic purposes and comprise an inflatable balloon at the distal catheter end. Said ballopn is used for posi-tioning the catheter tip in the pulmonary artery. , Intracardiac blood pumps which are inserted through a blood vessel into the heart are difficult to correctly place in the heart. In particular when the blood pump is inserted through the upper vena cava to pump blood from the right atrium into the pulmonary artery, correct placing of the blood pump is difficult since the pump must perform a bend of approxi-mately 180° to ensure that the intake opening is located in the right atrium and the outlet opening in the pulmonary artery. Further, numerous fibres and tendines exist in the right ventricle, which retain the tricuspid valve, protect the leaflet of the valve against bulging inside out and en-sure inherent stability of the heart. A blood pump inserted through a vena cava must be guided between such fibres and tendines.
It is the object of the invention to provide an intracardiac blood pump which can be relatively easily placed in the heart.
According to the invention this object is solved by means of the features stated in claim 1.
A flexible hose is attached to the pump outlet of the blood pump according to the invention with the distal end of the hose comprising a balloon acting as guide element in the blood flow. The invention utilizes the fact that the blood naturally flows in the heart from the vena cava into the right atrium and through the right ventricle into the pulmonary artery. The blood pump which comprises a balloon at the distal end of the hose is inserted along this path with the balloon floating in the blood flow automatically finds its way from the right atrium into the pulmonary artery. The hose outlet is subsequently stabilized in the pulmonary artery.wheras the pump section is positioned in the right atrium. The pump hose performs a bend of ap-proximately 180°. In this way it is possible to correctly place the blood pump including the pump hose in the heart without the hose outlet push-ing against the ventricular septa or diagnostic aids (X-rays or ultrasound) being required.
The term intracardiac within the meaning of the present invention includes the heart chambers (ventricles), the atria and the adjacent vascular stumps.
The pump hose should prefably be prebent according to its final position which it will assume in the heart. This requires bending by at least ap-proximately 150°. Although the pump hose must be capable of being elongated for insertion through the vena cava it should assume a U-form or a V-form in the slackened condition. It would be particularly preferred that the pump hose displays a flexural rigidity which decreases from the proximal end to the distal end. In this way the distal end as path finder can be easily moved so that the balloon can better follow the natural blood flow.
The balloon must not necessarily be directly attached to the pump hose. It may also be fixed to a catheter which forms part of the pump hose and extends on the inside or the outside of the latter. In any case a lumen must extend towards the balloon via which the balloon can be inflated. A
second lumen may additionally be provided into which a guide wire is in-serted which facilitates advancing of the pump hose through the vascular system. After removal of the guide wire said second lumen may be used as pressure measuring lumen.
According to a preferred embodiment the balloon is configured as annular balloon and surrounds the pump hose. The advantage of such a configura-tion is that owing to the presence of the balloon the distal hose end has an increased outside diameter and is thus retained by the pulmonary valve. In this way the balloon helps to anchor the hose end to the pul-monary valve while the hose outlet is located in the pulmonary artery.
This prevents the hose outlet from slipping out the pulmonary artery. An-other advantage is that the annular balloon forms a rounded blunt end of the pump hose so that the pump hose cannot damage the vascular or heart walls or other parts of the heart. Finally, the hose end is prevented from hooking at the valve margin or tendines in the heart.
Since the pump section pumps into the pump hose, the pump hose is automatically kept open. Thus a collapsible hose can be used as pump hose, e. g. a hose made of sheet material, whose wall is not inherently stable. Through this hose a catheter may extend to the balloon arranged at the distal end.
When an intracardiac blood pump with a flexible pump hose is used there is the danger that the blood leaving the hose outlet causes a recoil at the hose, which may result in a retrograde displacement of the hose. Thus the hose may slip out of the pulmonary valve. It is thus a further object of the invention to provide an intracardiac blood pump in which displacements of the hose due to hydraulic reaction forces are prevented.
According to the invention this object is solved by means of the features stated in claim 13. To the distal end of the hose a traction element is fixed to which the pumped flow is directed. Said traction element may be a leaf-let or a balloon. The blood flow leaving the hose end pushes against the traction element, which produces a forward directed force acting against the retraction force of the hose. In this way the traction element serves for a stabilized positioning of the pump hose.
Hereinafter embodiments of the invention are explained in detail with reference to the drawings in which:
Fig. 1 shows a cross-section of the heart with a blood pump arranged therein, Fig. 2 shows a representation of the blood pump of Fig. 1, Fig. 3 shows a section of detail III of Fig. 2, Fig. 4 shows a second embodiment of the blood pump, Fig. 5 shows a third embodiment and Fig. 6 shows on an enlarged scale a representation of the catheter of the embodiment shown in Fig. 5.
According to Fig. 1 the blood pump 10 is an intravascular blood pump, i. e. a blood pump which can be inserted through the blood vessel system of a patient into the heart. The outside diameter of such a blood pump is at no place larger than 8 mm. The pump 10 comprises a drive section 11 and a pump section 12 rigidly connected with the drive section. The pump corresponds e. g. to that described in W097/37696 so its internal struc-ture needs not be explained herein detail. In the transition area between drive section 11 and pump section 12 intake openings 13 are arranged through which blood is radially taken in from. outside. The pump section 12 comprises an impeller (not shown) which moves the blood in .axial di-rection. To the outlet of the pump section 12 a pump hose 14 is connect-ed. Said pump hose comprises a proximal end 15 connected with the pump outlet and a distal end 16 forming the hose outlet.
The proximal end of the pump 10 is connected with a catheter 17 which also contains the electrical supply lines for the drive section 11. Further, the catheter 17 comprises a lumen which can be connected to a compres-sed air source.
The pump hose 14 and the catheter 17 are of flexible design. The rigid length of the pump 10 does not exceed 35 mm to allow the pump to move through the bends of the blood vessel system. The length of the pump hose 14 is at least twice that of the rigid length of the pump. The pump hose is approximately 12 cm long and has an outside diameter of approxi-mately 8 mm. Its wall thickness is 0.05 mm to 0.2 mm. The bending radius of the hose bend is 40~ mm to 60 mm.
Fig. 1 shows a cross-section of the heart 20. The lower vena cava 22 and the upper vena cava 23 end in the right atrium 21. Between the right atrium 21 and the right ventricle 24 the tricuspid valve 25 is located.
Between the right ventricle 24 and the pulmonary artery 26 the pulmon-ary valve 27 is located. The blood flows from the pulmonary artery 26 to the lung and from there back to the left atrium 28 and the left ventricle 29. Between the left ventricle 29 and the aorta 30 the aortic valve 31 is located.
The pump 10 is positioned as right ventricular pump such that it delivers from the right atrium 21 into the pulmonary artery 26. For this purpose it is, in the embodiment sfiown, placed through the upper vena cava 23. It would also be possible to place it through the lower vena cava 22. During insertion of the pump 10 the pump hose 14 of the pump lies ahead, i. e. it is positioned downstream of the pump 10 as seen in the direction of flow of the blood surrounding the pump.
At the distal end 16 of the pump hose 14 a balloon 35 is arranged which is configured here as annular balloon as shown in Fig. 2 and Fig. 3. The balloon 35 filled with gas (e. g. air, helium, C02) or a liquid has a larger outside diameter than the pump hose 14. Consequently, the balloon 35 acts as a guide element entrained by the natural blood flow. Thus the balloon 35 is washed via the natural blood path first into the right ven-tricle 24 and then into the pulmonary atery 26.
The balloon 35 is inflated by a pressure being produced in a pressure lumen 36 of the pump hose 14. The pressure lumen 36 is connected via openings 37 with the inside of the annular balloon 35. In the pump hose 14 the blood flows through the blood lumen 38 whose cross-section is considerably larger than that of the pressure lumen 36. The pressure lumen 36 is connected to a corresponding pressure lumen of the proximal catheter 17 so that its pressure can be extracorporeally controlled.
The pump hose 14 is shown in Fig. 2 in slackened condition. The pump hose is prebent into U-form or V-form, i. e. it can remember the form so that it is not subjected to any essential constraint in the heart and, in turn, does not exert any essential constraint on the heart as shown in Fig.
1. In Fig. 2 the blackened dotted area indicates the rigidity of the pump hose 14. At the proximal end 15 said rigidity is very large and continuous-ly decreases towards the distal end 16. This means that the distal end 16 where the balloon 35 is arranged can be freely moved and guided by the balloon.
As can be seen from Fig. 3, the distal end of the balloon 35 projects be-yond the end 39 of the pump hose 14 so that the balloon 35 forms a rounded hose end 40 which does not run the risk of hooking at obstacles.
At the proximal end of the balloon 35 an annular undercut 41 is formed s into which the tips of the pulmonary valve 27 can penetrate as is shown in Fig. 1 so that the pulmonary valve prevents the hose end from receding.
As is shown in Figs. 2 and 3 a traction element 43 traverses the hose out-let 42 in the form of a dome-shaped leaflet. Said traction element 43 com-prises a thin and flexible membrane which is fixed to the balloon 35 by means of webs 44. The blood flowing out of the hose outlet 42 flows against the traction element 43 thus exerting a tractive force onto the pump hose 14 which counteracts the recoil effect. This prevents the distal end 16 of the pump hose from displacing and possibly slipping out of the pulmonary valve 27 due to the hydraulic recoil.
The pump hose 14 is preferably made of polyurethane which has turned out to be particulary suitable.
In the embodiment shown in Fig. 4 a pump hose 14a is connected to the pump 10, which comprises an elastic supporting structure 45 in the form of a carbon or metal spiral. Said supporting structure 45 keeps the pump hose open and effects the desired flexural rigidity which may vary over the hose length. A catheter 46 extends through the pump hose 45, which is provided with a balloon 35a at its distal end. Said balloon acts as guide element for the pump hose 14a. The catheter 46 contains a pressure lumen. Its outside diameter is considerably smaller than the diameter of the pump hosel4a so that an adequate cross-section for the blood flow is available in the pump hose. The catheter 46 is connected with the catheter 17.
A ball as traction element 43a is arranged at a distance behind the hose outlet 42 and fixed to the catheter 46. The blood flow pushing against the traction element 43a prevents the distal hose end 16 from receding to-wards the pump. 10. The pump hose 14a is anchored to the traction ele-ment 43a by means of a holding fixture 47.
In the embodiment shown in Figs. 5 and 6 the pump hose 14a is a collap-sible pump hose made of thin sheet material with no inherent stability. A
catheter 48 comprising a balloon 35a at its distal end extends through the pump hose 14b. Said catheter 48 is connected with catheter 17. The distal end 16 of the pump hose 14b is connected with the catheter 48 and the pump hose 14b comprises outlet openings 49 through which the blood flows out. When the pump is inserted as shown in Fig. 5 the pump is out of operation so that the pump hose 14b is collapsed. With the aid of the balloon 35a the soft and flexible catheter 48 is placed in the heart thus positioning the pump hose 14b. If the pump is subsequently placed into operation, the pump hose 14b is expanded.
To facilitate the placing process the catheter 36,36,48 shown in Fig. 6 may contain, in addition to the pressure lumen 49 leading to the balloon 35a, another lumen 50 destined for accommodation of a guide wire 51 and, after removal of the guide wire, for external pressure measurement. Said guide wire 51 which also extends through the catheter 17 and the pump allows the operating surgeon to controllably influence the laying of the pump hose. Following that the guide wire 51 is removed.
According to Fig. 6 an opening 52 may be provided in the catheter 48;
which is connected with the lumen 50 and blocked by the guide wire 51.
When the guide wire 51 has been removed from the lumen 50, blood enters the lumen 50 through the opening 52. The lumen 50 can be con-nected with a blood pressure instrument so that the blood pressure in the pulmonary artery can be measured and influenced, if necessary, during the pumping process.
If placing of the pump hose is effected without a guide wire, the pressure can be measured at the place 52 in the lumen 50 with the aid of measur-able pressure profiles. On the basis of the pressure profiles the exact posi-tion of the distal pump hose tip can thus be determined.
The diameter of the balloon may not be so large that it essentially im-pedes the flow through the pulmonary artery 26 or even isolates the pulmonary artery. As a rule, the diameter may not exceed 30 mm.
Further, in contrast to a dilating balloon, the balloon should display a high elasticity. Silicone, latex and preferably polyurethane are suitable balloon materials owing to their elasticity properties.
While floating in the blood flow as guide element for the catheter hose, the balloon may be strongly inflated at high pressure and subsequently decreased in size by reducing the pressure in order to act as traction eie-ment to which the pumped flow is directed.
The balloon 35 is inflated by a pressure being produced in a pressure lumen 36 of the pump hose 14. The pressure lumen 36 is connected via openings 37 with the inside of the annular balloon 35. In the pump hose 14 the blood flows through the blood lumen 38 whose cross-section is considerably larger than that of the pressure lumen 36. The pressure lumen 36 is connected to a corresponding pressure lumen of the proximal catheter 17 so that its pressure can be extracorporeally controlled.
The pump hose 14 is shown in Fig. 2 in slackened condition. The pump hose is prebent into U-form or V-form, i. e. it can remember the form so that it is not subjected to any essential constraint in the heart and, in turn, does not exert any essential constraint on the heart as shown in Fig.
1. In Fig. 2 the blackened dotted area indicates the rigidity of the pump hose 14. At the proximal end 15 said rigidity is very large and continuous-ly decreases towards the distal end 16. This means that the distal end 16 where the balloon 35 is arranged can be freely moved and guided by the balloon.
As can be seen from Fig. 3, the distal end of the balloon 35 projects be-yond the end 39 of the pump hose 14 so that the balloon 35 forms a rounded hose end 40 which does not run the risk of hooking at obstacles.
At the proximal end of the balloon 35 an annular undercut 41 is formed s into which the tips of the pulmonary valve 27 can penetrate as is shown in Fig. 1 so that the pulmonary valve prevents the hose end from receding.
As is shown in Figs. 2 and 3 a traction element 43 traverses the hose out-let 42 in the form of a dome-shaped leaflet. Said traction element 43 com-prises a thin and flexible membrane which is fixed to the balloon 35 by means of webs 44. The blood flowing out of the hose outlet 42 flows against the traction element 43 thus exerting a tractive force onto the pump hose 14 which counteracts the recoil effect. This prevents the distal end 16 of the pump hose from displacing and possibly slipping out of the pulmonary valve 27 due to the hydraulic recoil.
The pump hose 14 is preferably made of polyurethane which has turned out to be particulary suitable.
In the embodiment shown in Fig. 4 a pump hose 14a is connected to the pump 10, which comprises an elastic supporting structure 45 in the form of a carbon or metal spiral. Said supporting structure 45 keeps the pump hose open and effects the desired flexural rigidity which may vary over the hose length. A catheter 46 extends through the pump hose 45, which is provided with a balloon 35a at its distal end. Said balloon acts as guide element for the pump hose 14a. The catheter 46 contains a pressure lumen. Its outside diameter is considerably smaller than the diameter of the pump hosel4a so that an adequate cross-section for the blood flow is available in the pump hose. The catheter 46 is connected with the catheter 17.
A ball as traction element 43a is arranged at a distance behind the hose outlet 42 and fixed to the catheter 46. The blood flow pushing against the traction element 43a prevents the distal hose end 16 from receding to-wards the pump. 10. The pump hose 14a is anchored to the traction ele-ment 43a by means of a holding fixture 47.
In the embodiment shown in Figs. 5 and 6 the pump hose 14a is a collap-sible pump hose made of thin sheet material with no inherent stability. A
catheter 48 comprising a balloon 35a at its distal end extends through the pump hose 14b. Said catheter 48 is connected with catheter 17. The distal end 16 of the pump hose 14b is connected with the catheter 48 and the pump hose 14b comprises outlet openings 49 through which the blood flows out. When the pump is inserted as shown in Fig. 5 the pump is out of operation so that the pump hose 14b is collapsed. With the aid of the balloon 35a the soft and flexible catheter 48 is placed in the heart thus positioning the pump hose 14b. If the pump is subsequently placed into operation, the pump hose 14b is expanded.
To facilitate the placing process the catheter 36,36,48 shown in Fig. 6 may contain, in addition to the pressure lumen 49 leading to the balloon 35a, another lumen 50 destined for accommodation of a guide wire 51 and, after removal of the guide wire, for external pressure measurement. Said guide wire 51 which also extends through the catheter 17 and the pump allows the operating surgeon to controllably influence the laying of the pump hose. Following that the guide wire 51 is removed.
According to Fig. 6 an opening 52 may be provided in the catheter 48;
which is connected with the lumen 50 and blocked by the guide wire 51.
When the guide wire 51 has been removed from the lumen 50, blood enters the lumen 50 through the opening 52. The lumen 50 can be con-nected with a blood pressure instrument so that the blood pressure in the pulmonary artery can be measured and influenced, if necessary, during the pumping process.
If placing of the pump hose is effected without a guide wire, the pressure can be measured at the place 52 in the lumen 50 with the aid of measur-able pressure profiles. On the basis of the pressure profiles the exact posi-tion of the distal pump hose tip can thus be determined.
The diameter of the balloon may not be so large that it essentially im-pedes the flow through the pulmonary artery 26 or even isolates the pulmonary artery. As a rule, the diameter may not exceed 30 mm.
Further, in contrast to a dilating balloon, the balloon should display a high elasticity. Silicone, latex and preferably polyurethane are suitable balloon materials owing to their elasticity properties.
While floating in the blood flow as guide element for the catheter hose, the balloon may be strongly inflated at high pressure and subsequently decreased in size by reducing the pressure in order to act as traction eie-ment to which the pumped flow is directed.
Claims (13)
1. Intracardiac blood pump comprising a radially intaking and axially delivering pump section (11) connected with a catheter (17), and a pump hose (14) connected with the pump outlet, which has a proximal end (15) adjacent to the pump outlet and a distal end (16) forming the hose outlet, characterized in that the pump hose (14) comprises adjacent to its distal end a balloon (35) capable of being entrained by the blood flow and acting as guide element.
2. Blood pump according to claim 1 characterized in that the pump hose is prebent by more than 100°, preferably by approximately 150°.
3. Blood pump according to claim 1 or 2 characterized in that the pump hose (14) displays a flexural rigidity which decreases from the proximal end (15) to the distal end (16).
4. Blood pump according to one of claims 1-3 characterized in that the pump hose (14) comprises a catheter (46;48) on its inside or its outside which projects beyond the distal end (16) of the pump hose and comprises the balloon (35a) beyond the distal end.
5. Blood pump according to one of claims 1-3 characterized in that the balloon (35) configured as annular balloon surrounds the pump hose (14).
6. Blood pump according to claim 5 characterized in that the annular balloon forms a rounded hose tip (40).
7. Blood pump according to one of claims 1-6 characterized in that the pump hose (14b) is a collapsible hose.
8. Blood pump according to one of claims 1-7 characterized in that the pump hose (14a) contains an elastic supporting structure (45).
9. Blood pump according to one of claims 1-8 characterized in that the pump hose (14b) comprises a catheter (48) and that a guide wire (51) capable of being inserted into the catheter (48) is provided.
10. Blood pump according to one of claims 1-9 characterized in that the catheter (48) comprises a lumen (50) for the guide wire (51) and a pressure lumen (49).
11. Blood pump according to one of claims 1-10 characterized in that the catheter (48) comprises a lumen (50) which can be used as pressure measuring lumen.
12. Blood pump according to one of claims 1-11 characterized in that the diameter of the balloon in the inflated condition does not exceed 30 mm.
13. Intracardiac blood pump comprising a radially intaking and axially delivering pump section (11) connected with a catheter (17), and a flexible pump hose (14) connected with the pump outlet, which has a proximal end (15) adjacent to the pump outlet and a distal end (16) forming the hose outlet, characterized in that at the distal end (16) of the pump hose (14) a traction element (43) is fixed to which the pumped flow is directed.
Applications Claiming Priority (3)
Application Number | Priority Date | Filing Date | Title |
---|---|---|---|
DE19821307.7 | 1998-05-13 | ||
DE19821307A DE19821307C1 (en) | 1998-05-13 | 1998-05-13 | Intra-cardiac blood pump |
PCT/EP1999/002790 WO1999058170A1 (en) | 1998-05-13 | 1999-04-24 | Intracardiac blood pump |
Publications (1)
Publication Number | Publication Date |
---|---|
CA2295951A1 true CA2295951A1 (en) | 1999-11-18 |
Family
ID=7867556
Family Applications (1)
Application Number | Title | Priority Date | Filing Date |
---|---|---|---|
CA002295951A Abandoned CA2295951A1 (en) | 1998-05-13 | 1999-04-24 | Intracardiac blood pump |
Country Status (13)
Country | Link |
---|---|
US (1) | US6544216B1 (en) |
EP (1) | EP0996472B1 (en) |
JP (1) | JP4163384B2 (en) |
KR (1) | KR20010021546A (en) |
CN (1) | CN1268894A (en) |
AT (1) | ATE288771T1 (en) |
AU (1) | AU749458B2 (en) |
CA (1) | CA2295951A1 (en) |
DE (2) | DE19821307C1 (en) |
IL (1) | IL133631A0 (en) |
NO (1) | NO996232L (en) |
PL (1) | PL337993A1 (en) |
WO (1) | WO1999058170A1 (en) |
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- 1998-05-13 DE DE19821307A patent/DE19821307C1/en not_active Expired - Fee Related
-
1999
- 1999-04-24 DE DE59911583T patent/DE59911583D1/en not_active Expired - Lifetime
- 1999-04-24 IL IL13363199A patent/IL133631A0/en unknown
- 1999-04-24 CA CA002295951A patent/CA2295951A1/en not_active Abandoned
- 1999-04-24 US US09/446,770 patent/US6544216B1/en not_active Expired - Lifetime
- 1999-04-24 PL PL99337993A patent/PL337993A1/en unknown
- 1999-04-24 WO PCT/EP1999/002790 patent/WO1999058170A1/en not_active Application Discontinuation
- 1999-04-24 KR KR1020007000104A patent/KR20010021546A/en not_active Application Discontinuation
- 1999-04-24 JP JP2000548020A patent/JP4163384B2/en not_active Expired - Fee Related
- 1999-04-24 CN CN99800718A patent/CN1268894A/en active Pending
- 1999-04-24 AU AU38228/99A patent/AU749458B2/en not_active Expired
- 1999-04-24 EP EP99920778A patent/EP0996472B1/en not_active Expired - Lifetime
- 1999-04-24 AT AT99920778T patent/ATE288771T1/en not_active IP Right Cessation
- 1999-12-16 NO NO996232A patent/NO996232L/en not_active Application Discontinuation
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US8932246B2 (en) | 2007-03-16 | 2015-01-13 | Novapump Gmbh | Device for supporting the heart and circulatory system |
Also Published As
Publication number | Publication date |
---|---|
NO996232L (en) | 2000-03-13 |
WO1999058170A1 (en) | 1999-11-18 |
AU749458B2 (en) | 2002-06-27 |
KR20010021546A (en) | 2001-03-15 |
US6544216B1 (en) | 2003-04-08 |
DE59911583D1 (en) | 2005-03-17 |
EP0996472A1 (en) | 2000-05-03 |
ATE288771T1 (en) | 2005-02-15 |
IL133631A0 (en) | 2001-04-30 |
JP2002514472A (en) | 2002-05-21 |
EP0996472B1 (en) | 2005-02-09 |
JP4163384B2 (en) | 2008-10-08 |
NO996232D0 (en) | 1999-12-16 |
DE19821307C1 (en) | 1999-10-21 |
PL337993A1 (en) | 2000-09-25 |
CN1268894A (en) | 2000-10-04 |
AU3822899A (en) | 1999-11-29 |
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Legal Events
Date | Code | Title | Description |
---|---|---|---|
FZDE | Discontinued |